(1)因为R1与R2串联,串联电路电流处处相等由欧姆定律得:U1:U2=IR1:IR2=R1:R2=10Ω:20Ω=1:2;(2)∵串联电路中总电阻等于各分电阻之和,∴R=R1+R2=10Ω+20Ω=30Ω;则I= U R = 6V 30Ω =0.2A;R1所消耗的电能W1=I2R1t=(0.2A)2×10Ω×60s=24J.故答案为:1:2;24.
